Find the value of x if 1 + 6 + 11 + ... + x = 189. - Mathematics

प्रश्न

Find the value of x if 1 + 6 + 11 + ... + x = 189.

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उत्तर

1 + 6 + 11 + ... + x = 189

a = 1

d = 6 − 1

= 5

a_n = x

S_n = 189

`n/2[2a + (n - 1)d] = 189`

`n/2[2 + (n - 1)5] = 189`

`n/2[2 + 5n - 5] = 189`

`n/2[5n - 3] = 189`

5n² − 3n = 189 × 2

5n² − 3n = 378

5n² − 3n − 378 = 0

n = `(−(−3) ± sqrt(9 - 4(5)(-378)))/(2(5))`

= `(3 ± sqrt(9 + 7560))/10`

= `(3 ± sqrt(7569))/10`

= `(3 ± 87)/10`

= `(3 + 87)/10, (3 - 87)/10`

= `90/10, (-84)/10`

n = 9

a_n = a + (n −1 )d

x = 1 + (9 − 1)5

x = 1 + 8 × 5

x = 1 + 40

x = 41

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Q 3. (a)Q 2. (e)Q 3. (b)

पाठ 9: Arithmetic and geometric progression - Exercise 9C [पृष्ठ १८७]

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पाठ 9 Arithmetic and geometric progression
Exercise 9C | Q 3. (a) | पृष्ठ १८७

Find the value of x if 1 + 6 + 11 + ... + x = 189. - Mathematics

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Find the value of x if 1 + 6 + 11 + ... + x = 189. - Mathematics

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